Boruah Ankita, Boro Bishal, Paul Ratul, Chang Chia-Che, Mandal Srayee, Shrotri Abhijit, Pao Chih-Wen, Mai Binh Khanh, Mondal John
Department of Catalysis & Fine Chemicals, CSIR-Indian Institute of Chemical Technology, Uppal Road, Hyderabad-500007, India.
Academy of Scientific and Innovative Research (AcSIR), Ghaziabad-201001, India.
ACS Appl Mater Interfaces. 2024 Jul 10;16(27):34437-34449. doi: 10.1021/acsami.4c06198. Epub 2024 Jun 28.
Harvesting solar energy to produce value-added chemicals from carbon dioxide (CO) presents a promising route for addressing the complexities of sustainable energy systems and environmental issues. In this context, the development of metal-coordinated porous organic polymers (POPs) offers a vital avenue for improving the photocatalytic performance of organic motifs. The current study presents a metal-integrated photocatalytic system (namely, ) developed via a one-pot Friedel-Crafts (F.C.) acylation strategy, for solid-gas phase photochemical CO reduction to CO (CORR). The postsynthetic incorporation of metal (Zn) active sites on the host polymeric backbone of significantly influences the catalytic activity. Notably, demonstrates good photocatalytic performance in the absence of any cocatalyst and photosensitizer yielding CO while impeding the competitive hydrogen evolution reaction (HER) from water. The experimental findings collectively propose that the observed catalytic activity and selectivity arise from the synergistic interplay between the singular zinc catalytic centers and the light-harvesting capacity of the highly conjugated polymeric backbone. Further, X-ray absorption spectroscopy (XAS) analysis has significantly highlighted the prominent role played by the ZnNO single sites in the polymeric framework for activating the gaseous CO molecules. Further, time-dependent density functional theory (DFT) analysis also reveals the thermodynamic feasibility of CORR over HER under optimized reaction conditions. This work cumulatively presents an effective strategy to demonstrate the importance of metal-active sites and effectively establish their structure-activity relationship during photocatalysis.
利用太阳能将二氧化碳(CO₂)转化为增值化学品,为解决可持续能源系统的复杂性和环境问题提供了一条有前景的途径。在此背景下,金属配位多孔有机聚合物(POPs)的发展为提高有机基序的光催化性能提供了一条重要途径。当前的研究提出了一种通过一锅法傅克(F.C.)酰化策略开发的金属集成光催化系统(即 ),用于固气相光化学CO₂还原为CO(CORR)。在主体聚合物骨架上进行金属(Zn)活性位点的后合成掺入对催化活性有显著影响。值得注意的是, 在没有任何助催化剂和光敏剂的情况下表现出良好的光催化性能,产生CO,同时抑制了来自水的竞争性析氢反应(HER)。实验结果共同表明,观察到的催化活性和选择性源于单个锌催化中心与高度共轭聚合物骨架的光捕获能力之间的协同相互作用。此外,X射线吸收光谱(XAS)分析显著突出了聚合物框架中ZnNO单位点在活化气态CO₂分子方面所起的重要作用。此外,含时密度泛函理论(DFT)分析还揭示了在优化反应条件下CORR相对于HER的热力学可行性。这项工作累积提出了一种有效的策略,以证明金属活性位点的重要性,并在光催化过程中有效地建立它们的构效关系。